EP3083975A1 - Stereo-specific synthesis of (13r)-manoyl oxide - Google Patents
Stereo-specific synthesis of (13r)-manoyl oxideInfo
- Publication number
- EP3083975A1 EP3083975A1 EP14816252.2A EP14816252A EP3083975A1 EP 3083975 A1 EP3083975 A1 EP 3083975A1 EP 14816252 A EP14816252 A EP 14816252A EP 3083975 A1 EP3083975 A1 EP 3083975A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- seq
- polypeptide
- sequence
- cftps2
- cftps4
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
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- IGGWKHQYMAJOHK-CZKCSJLSSA-N (13R)-manoyl oxide Chemical compound CC1(C)CCC[C@@]2(C)[C@H]1CC[C@@]1(C)O[C@](C)(CC[C@@H]21)C=C IGGWKHQYMAJOHK-CZKCSJLSSA-N 0.000 title claims abstract description 89
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- OINNEUNVOZHBOX-QIRCYJPOSA-N 2-trans,6-trans,10-trans-geranylgeranyl diphosphate Chemical compound CC(C)=CCC\C(C)=C\CC\C(C)=C\CC\C(C)=C\COP(O)(=O)OP(O)(O)=O OINNEUNVOZHBOX-QIRCYJPOSA-N 0.000 claims abstract description 14
- 239000001177 diphosphate Substances 0.000 claims abstract description 13
- XPPKVPWEQAFLFU-UHFFFAOYSA-J diphosphate(4-) Chemical compound [O-]P([O-])(=O)OP([O-])([O-])=O XPPKVPWEQAFLFU-UHFFFAOYSA-J 0.000 claims abstract description 13
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Classifications
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- C07D—HETEROCYCLIC COMPOUNDS
- C07D311/00—Heterocyclic compounds containing six-membered rings having one oxygen atom as the only hetero atom, condensed with other rings
- C07D311/02—Heterocyclic compounds containing six-membered rings having one oxygen atom as the only hetero atom, condensed with other rings ortho- or peri-condensed with carbocyclic rings or ring systems
- C07D311/78—Ring systems having three or more relevant rings
- C07D311/92—Naphthopyrans; Hydrogenated naphthopyrans
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8242—Phenotypically and genetically modified plants via recombinant DNA technology with non-agronomic quality (output) traits, e.g. for industrial processing; Value added, non-agronomic traits
- C12N15/8243—Phenotypically and genetically modified plants via recombinant DNA technology with non-agronomic quality (output) traits, e.g. for industrial processing; Value added, non-agronomic traits involving biosynthetic or metabolic pathways, i.e. metabolic engineering, e.g. nicotine, caffeine
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- C12N9/00—Enzymes; Proenzymes; Compositions thereof; Processes for preparing, activating, inhibiting, separating or purifying enzymes
- C12N9/88—Lyases (4.)
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- C12N9/00—Enzymes; Proenzymes; Compositions thereof; Processes for preparing, activating, inhibiting, separating or purifying enzymes
- C12N9/90—Isomerases (5.)
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- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P17/00—Preparation of heterocyclic carbon compounds with only O, N, S, Se or Te as ring hetero atoms
- C12P17/02—Oxygen as only ring hetero atoms
- C12P17/06—Oxygen as only ring hetero atoms containing a six-membered hetero ring, e.g. fluorescein
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- C12Y—ENZYMES
- C12Y402/00—Carbon-oxygen lyases (4.2)
- C12Y402/03—Carbon-oxygen lyases (4.2) acting on phosphates (4.2.3)
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- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
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- C12Y505/01—Intramolecular lyases (5.5.1)
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- C07B2200/07—Optical isomers
Definitions
- the present invention relates to a method for manufacturing enantiomerically pure (13R)-manoyl oxide, said method comprising the steps of contacting geranylgeranyl diphosphate (GGPP) with a class II diterpene synthase to obtain labd-13-en-8,15-diol diphosphate (LPP), and then contacting the LPP with a class I diterpene synthase to obtain (13R)-manoyl oxide.
- the invention further relates to (13R)-manoyl oxide obtained by the method of the invention.
- the invention furthermore relates to polypeptides with diterpene synthase activity.
- the invention further relates to polynucleotides encoding such polypeptides.
- vectors for expression of the polypeptides and host cells expressing the polypeptides may be useful in aforementioned methods.
- Manoyl oxide is a compound which exhibits a number of important properties like anti- bacterial, anticancer and anti-inflammatory activities. Manoyl oxide has so far only been detected as a side product or artefact of some reactions, and was present in a racemic mixture. Manoyl oxide derivatives also present numerous attractive properties.
- the (13R)-manoyl oxide epimer is a putative precursor of forskolin, a labdane diterpenoid found in the root of Coleus forskohlii (family Lamiaceae) which has received much attention for its broad range of pharmacological activities.
- forskolin a labdane diterpenoid found in the root of Coleus forskohlii (family Lamiaceae) which has received much attention for its broad range of pharmacological activities.
- biosynthesis of forskolin has not yet been conclusively elucidated.
- Coleus forskohlii (synonym: Plectranthus barbatus) is a perennial medicinal shrub of the mint family (Lamiaceae) indigenous to the subtropical and temperate climate zones of India and south-east Asia. The plant has been used since ancient times in Malawi and Ayurvedic traditional medicine for treating a broad range of human health disorders.
- the main active compound of C. forskohlii is forskolin, a heterocyclic labdane type diterpene found in the roots of the plant.
- the diverse pharmaceutical known and potential applications for forskolin extend from alleviation of glaucoma, anti-HIV or antitumor activities to treatment of hypertension and heart failure.
- forskolin relies on activation of the adenylate cyclase enzyme leading to a marked increase of the intracellular level of cAMP (3'-5'-cyclic adenosine monophosphate) in mammalian in vitro and in vivo systems.
- cAMP 3'-5'-cyclic adenosine monophosphate
- NKH477 has been approved for commercial use in Japan for treatment of cardiac surgery complications, heart failure, and cerebral vasospasm, while a forskolin eye drop solution was recently approved as an effective treatment for glaucoma.
- labdane diterpenoids with a bicyclic decalin core were detected primarily in the roots.
- Forskolin is a representative of an unusual series of tricyclic (8,13)-epoxy-labdanes, characteristic for this plant.
- Manoyl-oxide has to this date only been detected as experimental artefact (Zerbe et al., 2012; Giinnewich et al., 2013). Enzymatic conversion leading to production of manoyi oxide has at present never been reported. Thus pure enantiomers of manoyi oxide are currently not available. Methods of producing enantiomerically pure enantiomers of manoyl-oxide, including (13R)-manoyl oxide are needed. Also polypeptides capable of producing manoyi oxide are needed.
- the invention relates to a method of manufacturing (13R)-manoyl oxide, said method comprising the steps of:
- step (ii) contacting GGPP of step (i) with a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] or SEQ ID NO: 2 [SsLPPS], thus obtaining labd-13-en-8,15-diol diphosphate (LPP);
- step (iii) contacting the LPP of step (ii) with a second polypeptide having a sequence at least 70% identical to SEQ ID NO: 3 [CfTPS4], SEQ ID NO: 4 [CfTPS3] or SEQ ID NO: 5 [EpTPS8];
- the invention relates to (13R)-manoyl oxide obtained by the method of the invention.
- the invention in another aspect, relates to polypeptides having a diterpene synthase (diTPS) activity.
- the invention further relates to polynucleotides encoding such polypeptides and to vectors comprising such polynucleotides.
- the invention finally relates to a host cell comprising such vectors and/or such polynucleotides.
- the polypeptides of the invention are relevant for catalysing enzymatic synthesis of manoyi oxide.
- the invention relates to polypeptides having a diterpene synthase activity and comprising:
- sequence variant a biologically active sequence variant of said polypeptide, wherein the sequence variant has at least 75% sequence identity to said SEQ ID NO: 1 [CfTPS2], SEQ ID NO: 4 [CfTPS3], SEQ ID NO: 3 [CfTPS4] or SEQ ID NO: 5 [EpTPS8];
- the invention relates to a polynucleotide encoding a polypeptide of the invention.
- the invention in another aspect, relates to a vector comprising at least one
- the invention relates to a cell comprising a polynucleotide of the invention and/or a vector of the invention.
- Figure 1 Localization of oil bodies within the root cork of C. forskohlii.
- A Cross section of entire root with thick fissured cork. Lower right inset: the location of cork cells.
- B Rows of cork cells of different intensity, each with one prominent oil body.
- C- F Confocal imaging of Nile Red labeled oil bodies.
- C Cell with two oil bodies (same motif as D-F) seen in transmission channel. Discrimination between neutral lipids seen as bright deposits (D) and polar lipids seen in the magenta spectrum (E), also shown as overlay (F). The bar represents 200 ⁇ (A) and 10 ⁇ (B-F).
- Figure 2 Forskolin content (mg g " DW) as determined by HPLC-ELSD analysis from different tissues of C. forskohlii. (Ck), root cork; (CS), root stele and cortex; (Fl), flowers; (St) stems and (Lv) leaves. Data are the mean ⁇ SE of three independent biological replicates. The Y axis shows the forskolin content (mg/g dry weight).
- Figure 3 Selected diterpenes detected in C. forskohlii oil bodies.
- FS forskolin standard
- RC root cork
- IOL isolated oil bodies.
- A LC-MS analysis of forskolin (410 [forskolin]+23 [Na+]) in isolated oil bodies and in root cork tissue from C. forskohlii.
- the X axis shows the time in minutes.
- B GC-MS analysis of manoyl oxide in isolated oil bodies and in root cork tissue from C. forskohlii.
- the X axis shows the time in minutes.
- C Bright field microscope image of isolated C. forskohlii oil bodies. The bar represents 5 ⁇ .
- D Molecular structure of (13R)-manoyl oxide.
- E Mass spectrum obtained from manoyl oxide identified in root cork tissue (top) and reference spectrum (bottom) from Wiley mass spectrum database.
- Figure 4 Phylogenetic classification of C. forskohlii diterpene synthases with known class II (A) and class I (B) sequences.
- the phylograms are rooted with the bifunctional eni-copalyl diphosphate synthase/ eni-kaurene synthase from the moss Physcomitrella patens.
- Asterisks indicate nodes supported by >80% bootstrap confidence and the scale bar indicates 0.1 amino acid changes.
- the numbers indicated at each enzyme are referred to the enzymatic products, the structures of which are given on the right.
- Figure 5 Relative expression of CfTPS genes in C. forskohlii tissues.
- Ck root cork
- CS root stele and cortex
- Fl flowers
- St stems
- Lv leaves.
- Transcript abundance of CfTPS genes expressed in arbitrary units was measured by qPCR using the translation initiation factor (TIF4a) for normalization. Each value represents the average of three biological replicates, each of which was performed in at least three technical replicates.
- Figure 6 GC-MS analysis of in vitro assays with C. forskohlii diTPS. IS, internal standard (1 ppm 1 -eicosene).
- A In vitro assays with CfTPS2 alone and coupled assays with CfTPS2 and CfTPS3 and CfTPS4. Extracts of CfTPS2 assays were treated with calf intestinal alkaline phosphatase (CIP). The X axis shows the retention time (minutes).
- CIP calf intestinal alkaline phosphatase
- the X axis shows the retention time (minutes).
- B In vitro assays with CfTPSI and coupled with CfTPS3 and CfTPS4. Extracts of CfTPSI were treated with CIP.
- the X axis shows the retention time (minutes), (a), (13R)-manoyl oxide; (b), (13S)-manoyl oxide; (g), labd-13-en-8,15-diol and (f), labden-8-ol; (d), miltiradiene and (h), copal-15-ol.
- C Mass spectra of compounds identified from assays. Structures tentatively identified as described in Materials and Methods.
- Figure 7 GC-MS analysis of hexane extracts from N. benthamiana transiently expressing C. forskohlii diTPS.
- Figure 8 Scheme of the biosynthetic routes from GGPP to specialized and general diterpenoids of the abietane, labdane and eni-kaurene class. Dashed arrows indicate reactions without experimental evidence in C. forskohlii. detection of (+)-ferruginol in C. forskohlii was reported earlier (Kelecom, 1983); 2 CYP76AH1 from the close relative Salvia miltiorrhiza was shown to convert miltiradiene to ferruginol (Guo et al., 2013).
- A universal precursor
- B diphosphate intermediates
- C diterpene backbone
- D D:
- FIG. 9 Clustal alignment of the class II diTPS.
- the cDNA sequences encoding CfTPS2 and SsLPPS were aligned using the Clustal omega from the EMBL-EBI (http://www.ebi.ac.uk/Tools/msa/clustalo/help/).
- Figure 10 Clustal alignment of the class I diTPS.
- the cDNA sequences encoding CfTPS3, CfTPS4 and EpTPS8 were aligned using the Clustal omega from the EMBL- EBI (http://www.ebi.ac.uk/Tools/msa/clustalo/help/).
- the invention relates to a method of manufacturing (13R)-manoyl oxide, said method comprising the steps of:
- step (ii) contacting GGPP of step (i) with a first polypeptide having the sequence of SEQ ID NO:1 [CfTPS2], or SEQ ID NO: 2 [SsLPPS] or a biologically active sequence variant of said polypeptide, wherein the sequence variant has at least 75% sequence identity to SEQ ID NO: 1 [CfTPS2] or SEQ ID NO: 2 [SsLPPS], thus obtaining labd-13-en-8,15-diol diphosphate (LPP);
- step (iii) contacting the LPP of step (ii) with a second polypeptide having the
- the invention relates to (13R)-manoyl oxide obtained by the method of the invention.
- the invention relates to polypeptides having a diterpene synthase (diTPS) activity.
- the invention further relates to polynucleotides encoding such polypeptides and to vectors comprising such polynucleotides.
- the invention finally relates to a host cell comprising such vectors and/or such polynucleotides.
- the polypeptides of the invention are relevant for catalysing enzymatic synthesis of manoyi oxide.
- the invention relates to polypeptides having a diterpene synthase activity and comprising:
- sequence variant a biologically active sequence variant of said polypeptide, wherein the sequence variant has at least 75% sequence identity to said SEQ ID NO: 1 [CfTPS2], SEQ ID NO: 4 [CfTPS3], SEQ ID NO: 3 [CfTPS4] or SEQ ID NO: 5 [EpTPS8];
- the biological activity is diterpene synthase activity.
- the invention relates to a polynucleotide encoding a polypeptide of the invention.
- the invention in another aspect, relates to a vector comprising at least one
- the invention relates to a cell comprising a polynucleotide of the invention and/or a vector of the invention.
- Amino acid Any synthetic or naturally occurring amino carboxylic acid, including any amino acid occurring in peptides and polypeptides including proteins and enzymes synthesized in vivo thus including modifications of the amino acids.
- amino acid is herein used synonymously with the term “amino acid residue” which is meant to encompass amino acids as stated which have been reacted with at least one other species, such as 2, for example 3, such as more than 3 other species.
- amino acid comprises both natural and non-natural amino acids any of which may be in the "D" or "L" isomeric form.
- Diterpene synthases (diTPS): Diterpene synthases (diTPS, EC 4.2.3.X) are enzymes capable of synthesising diterpene olefins and alcohols by sequential cycloisomerisation of the substrate geranylgeranyl-diphosphate (GGPP). DiTPS can be sorted in two classes, depending on the presence of a conserved motif. Class I diTPS contain an active site with a DDxxD motif, where D is an aspartic acid and x is any amino acid. Class II diTPS contain an active site with a DxDD motif, where D is an aspartic acid and x is any amino acid. Bifunctional classl/ll diTPS contain two active sites, with a DDxxD and a DxDD motif, respectively.
- Diterpenoid As used herein, a diterpenoid is an unsaturated hydrocarbon based on the isoprene unit (C 5 H 8 ), and having a general formula C 5 xH 8X .
- a diterpene contains a backbone of 20 carbon atoms, which can be decorated by additional groups, e.g. by esterification.
- a diterpenoid also is a type of diterpene.
- a diterpenoid can derive from geranylgeranyl pyrophosphate (GGPP).
- Diterpenoids include all types of molecules derived from GGPP with a very broad range of functionalization. Examples of diterpenoids are olefins and diterpene alcohols.
- Enantiomer An enantiomer or enantiomorph or epimer is one of two stereoisomers that are mirror images of each other that are non-superposable. In other words, an enantiomer is a chiral molecule having a non-superposable mirror image. Enantiomers have, when present in a symmetric environment, identical chemical and physical properties except for their ability to rotate plane-polarized light (+/-) by equal amounts but in opposite directions. Enantiomers of one compound often react differently with other substances that are also enantiomers. Since many molecules in the living organisms are enantiomers themselves, there is sometimes a marked difference in the effects of two enantiomers on these organisms.
- drugs for example, often only one of a drug's enantiomers is responsible for the desired physiologic effects, while the other enantiomer is less active, inactive, or sometimes even responsible for adverse effects.
- drugs composed of only one enantiomer can be developed to enhance the pharmacological efficacy and possibly dampen some side effects.
- Enantiomerically pure Enantiomerically pure, or enantiopure, refers to samples having, within the limits of detection, molecules of only one chirality.
- Fragment is used to indicate a non-full length part of a polynucleotide or polypeptide.
- a fragment is itself also a polynucleotide or polypeptide, respectively.
- polynucleotide sequences or amino acid sequences can be accomplished using a mathematical algorithm.
- a preferred, non-limiting example of a mathematical algorithm utilized for the comparison of two sequences is the algorithm of Karlin and Altschul (1990) Proc. Natl. Acad. Sci. USA 87:2264-2268, modified as in Karlin and Altschul (1993) Proc. Natl. Acad. Sci. USA 90:5873-5877.
- Such an algorithm is incorporated into the BLASTN and BLASTP programs of Altschul, et al. (1990) J. Mol. Biol. 215:403- 410.
- subject sequences are aligned so that the highest order homology (match) is obtained.
- the "percent identity" of two polynucleotide sequences may be determined using the BLASTN algorithm [Tatiana A. Tatusova, Thomas L. Madden: Blast 2 sequences - a new tool for comparing protein and nucleotide sequences; FEMS Microbiol. Lett. 1999 174 247-250], which is available from the National Center for Biotechnology
- NCBI National Cancer Information
- CLUSTAL W can be used for multiple sequence alignment preferably using BLOSUM 62 as scoring matrix.
- sequence identities are calculated by dividing the number of matches by the length of the aligned sequences with gaps. In general, the sequence identity is calculated with reference to the entire length of the reference sequence.
- An operative domain in relation to a class I or class II domain refers to a domain securing the biological processing of the polypeptide.
- Plastidial targeting signal A short sequence of amino acids that determines that a polypeptide should locate to the plastid in a plant cell.
- Polynucleotide A chain or sequence of nucleotides that convey genetic information. In regards to the present invention the polynucleotide is a deoxyribonucleic acid (DNA).
- Polypeptide Plurality of covalently linked amino acid residues defining a sequence and linked by amide bonds. The term is used analogously with oligopeptide and peptide. The natural and/or non-natural amino acids may be linked by peptide bonds or by non- peptide bonds.
- the term peptide also embraces post-translational modifications introduced by chemical or enzyme-catalyzed reactions, as are known in the art. The term can refer to a variant or fragment of a polypeptide.
- Promoter A binding site in a DNA chain at which RNA polymerase binds to initiate transcription of messenger RNA by one or more nearby structural genes.
- An inducible promoter refers to a promoter where initiation of transcription can be induced by e.g. addition of a compound to the growth medium or by changing the temperature.
- Racemic mixture contains equal parts of an optically active isomer and its enantiomer and has zero net rotation of plane-polarized light.
- substantially pure means sufficiently homogeneous to appear free of readily detectable impurities as determined by standard methods of analysis, such as thin layer chromatography (TLC), gel electrophoresis and high performance liquid chromatography (HPLC), gas-chromatography mass-spectrometry (GC-MS), used by those of skill in the art to assess such purity, or sufficiently pure such that further purification would not detectably alter the physical and chemical properties, such as enzymatic and biological activities, of the substance.
- TLC thin layer chromatography
- HPLC high performance liquid chromatography
- GC-MS gas-chromatography mass-spectrometry
- Transient expression refers to temporary expression of a polypeptide, for a limited period of time. Transient expression can be controlled by inducible and repressible promoters, agroinfiltration of plant cells with a bacterium such as Agrobacterium tumefaciens, and other methods known in the art.
- a 'variant' of a given reference polynucleotide or polypeptide refers to a polynucleotide or polypeptide that displays a certain degree of sequence
- a vector is a DNA molecule or an organism comprising a DNA molecule used as a vehicle to artificially carry foreign genetic material into another cell, where the DNA molecule can be replicated and/or expressed.
- the vectors herein may be plasmids, viral vectors, cosmids, bacterial vectors and artificial chromosomes.
- the invention relates to a method of manufacturing substantially pure
- step (ii) contacting GGPP of step (i) with a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] or SEQ ID NO: 2 [SsLPPS], thus obtaining labd-13-en-8,15-diol diphosphate (LPP);
- step (iii) contacting the LPP of step (ii) with a second polypeptide having a sequence at least 70% identical to SEQ ID NO: 3 [CfTPS4], SEQ ID NO: 4 [CfTPS3] or SEQ ID NO: 5 [EpTPS8];
- ManoyI oxide is a compound of general formula 0 2 ⁇ 34 0. It has been detected as an experimental artefact in a racemic mixture of the (13R) epimer (I) and (13S) epimer (II).
- GGPP geranylgeranyl diphosphate
- LPP is labd-13-en-8,15-diol diphosphate
- MO is (13R)-manoyl oxide
- the first step of the reaction is catalysed by a diterpene synthase (diTPS) having a class II diTPS activity.
- the class II diTPS catalyses protonation-initiated cationic cycloisomerization of GGPP to LPP.
- the reaction is terminated either by deprotonation or by water capture of the diphosphate carbocation.
- the first step of the reaction may 1 g be catalysed by any of the Class II diTPS described herein below in the section "Class II diterpene synthase".
- Class II diTPS particularly relevant for the invention are TPS2 from Coleus forsko lii (CfTPS2) and LPPS from Salvia sclarea (SsLPPS).
- the method of the invention allows manufacturing of (13R)-manoyl oxide.
- the (13R)-manoyl oxide obtained is substantially pure.
- the (13R)-manoyl oxide is more than 90% pure, such as 91 % pure, such as 92% pure, such as 93% pure, such as 94% pure, such as 95% pure, such as 96% pure, such as 97% pure, such as 98% pure, such as 99% pure, such as 100% pure.
- the (13R)-manoyl oxide manufactured by the method of the invention is more than 95% pure.
- the (13R)-manoyl oxide is 99% pure.
- the (13R)-manoyl oxide is 100% pure.
- the manoyl-oxide manufactured by the method of the invention is essentially (13R)-manoyl oxide.
- the (13R)-manoyl oxide is more than 90% enantiomerically pure, such as 91 % enantiomerically pure, such as 92% enantiomerically pure, such as 93% enantiomerically pure, such as 94% enantiomerically pure, such as 95% enantiomerically pure, such as 96%
- enantiomerically pure such as 97% enantiomerically pure, such as 98%
- enantiomerically pure such as 99% enantiomerically pure, such as 100%
- the manufactured by the method of the invention is more than 95% enantiomerically pure.
- the (13R)-manoyl oxide is 99% enantiomerically pure.
- the (13R)-manoyl oxide is 100% enantiomerically pure.
- the product obtained by performing the method of the invention is essentially free of (13S)-manoyl oxide.
- the product obtained comprises less than 10% (13S)-manoyl oxide, such as less than 9% (13S)-manoyl oxide, such as less than 8% (13S)-manoyl oxide, such as less than 7% (13S)-manoyl oxide, such as less than 6% (13S)-manoyl oxide, such as less than 5% (13S)-manoyl oxide, such as less than 4% (13S)-manoyl oxide, such as less than 3% (13S)-manoyl oxide, such as less than 2% (13S)-manoyl oxide, such as less than 1 %(13S)-manoyl oxide, such as 0% (13S)- manoyl oxide.
- the product obtained comprises less than 1 % (13S)-manoyl oxide.
- the product obtained comprises no (13S)-manoyl oxide
- the method of the invention is performed by contacting GGPP with a first polypeptide having a class II diTPS activity and a second polypeptide having a class I diTPS activity.
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2].
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 2 [SsLPPS].
- the second step of the reaction is catalysed by a diTPS having a class I diTPS activity. It catalyzes cleavage of the diphosphate group of LPP and additional cyclization or rearrangement reactions on the resulting carbocation, yielding (13R)-manoyl oxide. As with the class II diTPSs, deprotonation or water capture terminate the class I diTPS reaction.
- the second step of the reaction may be catalysed by any of the Class I diTPS described herein below in the section "Class I diterpene synthase". Class I diTPS particularly relevant for the invention are TSP3 and TPS4 from Coleus forskohlii (CfTPS3 and CfTPS4, respectively) and TPS8 from Euphorbia peplus (EpTPS8).
- the second polypeptide has a sequence at least 70% identical to, such as 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 3 [CfTPS4].
- the second polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 4 [CfTPS3]. In other embodiments, the second polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 5 [EpTPS8].
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 3 [CfTPS4].
- the first polypeptide has a sequence identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence identical to SEQ ID NO: 3 [CfTPS4].
- the first polypeptide may be a biologically active sequence variant of CfTPS2 of SEQ ID NO:1 , wherein the sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2], and the second polypeptide may be a biologically active sequence variant of CfTPS4 of SEQ ID NO:3, wherein the sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO:
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 4 [CfTPS3].
- the first polypeptide has a sequence identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence identical to SEQ ID NO: 4 [CfTPS3].
- the first polypeptide may be a biologically active sequence variant of CfTPS2 of SEQ ID NO:1 , wherein the sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2], and the second polypeptide may be a biologically active sequence variant of CfTPS3 of SEQ ID NO:4, wherein the sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to
- the first polypeptide may be CfTPS2 of SEQ ID NO:1 or a biologically active sequence variant of CfTPS2 of SEQ ID NO:1 , wherein the sequence variant is at least 80% identical to, EQ ID NO: 1 [CfTPS2], and the second polypeptide may be CfTPS3 of SEQ ID NO:4 or a biologically active sequence variant of CfTPS3 of SEQ ID NO:4, wherein the sequence variant is at least 80% identical to SEQ ID NO: 4 [CfTPS3].
- This may in particular be preferred in embodiments of the invention relating to methods for producing (13R)-manoyl oxide that is more than 95% enantiomerically pure.
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 5 [EpTPS8].
- the first polypeptide has a sequence identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence identical to SEQ ID NO: 5 [EpTPS8].
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 2 [SsLPPS] and the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 3 [CfTPS4].
- the first polypeptide has a sequence identical to SEQ ID NO: 2 [SsLPPS] and the second polypeptide has a sequence identical to SEQ ID NO: 3 [CfTPS4].
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 2 [SsLPPS] and the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 4 [CfTPS3].
- the first polypeptide has a sequence identical to SEQ ID NO: 2 [SsLPPS] and the second polypeptide has a sequence identical to SEQ ID NO: 4 [CfTPS3].
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 2 [SsLPPS] and the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 5 [EpTPS8].
- the first polypeptide has a sequence identical to SEQ ID NO: 2 [SsLPPS] and the second polypeptide has a sequence identical to SEQ ID NO: 5 [EpTPS8].
- the first and the second polypeptides are present at a stoichiometry that allows
- the first and second polypeptides are preferably present in the reaction at a stoichiometry ratio between 2:1 and 1 :2.
- the first and the second polypeptides are present in equal amounts, i.e. in a stoichiometry 1 .1 .
- Other stoichiometry ratios may lead to unbalanced reactions, where the produced manoyi oxide is in a racemic mixture, where manoyl-oxide is present both in the form of (13R)-manoyl oxide and (13S)-manoyl oxide.
- the method of the invention further comprises a step of recovering (13R)-manoyl oxide by methods known in the art.
- the method of the invention can be performed in vivo.
- the first and the second polypeptides may be heterologously expressed in a host organism by methods known in the art.
- the host organism may be a prokaryote or a eukaryote. In some
- the host organism is selected from the group comprising bacteria, yeast, fungi, plants, insects and mammals.
- the host organism may be selected from the group comprising Escherichia coli, Saccharomyces cerevisiae, Schizosaccharomyces pombe, Nicotiana benthamiana and Physcomitrella patens.
- the first and the second polypeptides are heterologously expressed in Escherichia coli.
- the first and the second polypeptides are heterologously expressed in Saccharomyces cerevisiae.
- the first and the second polypeptides are heterologously expressed in Nicotiana benthamiana.
- the first and the second polypeptides are heterologously expressed from Nicotiana benthamiana.
- the GGPP may be provided in a composition or it may be provided by the host organism or by a second host organism.
- the host organism is capable of secreting the first polypeptide and the second polypeptide.
- the GGPP is provided in a composition or is provided by the host organism or by a second host organism, capable of secreting the GGPP.
- the reaction occurs in a composition comprising the first and the second polypeptides secreted by the host organism and GGPP provided in the composition or secreted by the host organism or a second host organism.
- the second host organism may be selected from the group comprising Escherichia coli,
- the second host organism is identical to the host organism capable of heterologously expressing the first and the second polypeptides.
- the method of the invention can also be performed in a host cell.
- the first and the second polypeptides may be heterologously expressed in the host cell by methods known in the art.
- the host cell may be a prokaryote or a eukaryote. In some
- the host cell is selected from the group comprising bacteria, yeast, fungi, plants, insects and mammals.
- the host cell may be selected from the group comprising Escherichia coli, Saccharomyces cerevisiae, Schizosaccharomyces pombe, Nicotiana benthamiana and Physcomitrella patens.
- the first and the second polypeptides are heterologously expressed in Escherichia coli.
- the first and the second polypeptides are heterologously expressed in Saccharomyces cerevisiae.
- the first and the second polypeptides are heterologously expressed in Nicotiana benthamiana.
- the first and the second polypeptides are heterologously expressed from Nicotiana benthamiana.
- the starting substrate of the reaction being GGPP
- the host cell is further capable of producing GGPP.
- the host cell may be genetically engineered to be capable of synthesising GGPP. This can be performed by methods known in the art.
- the GGPP is produced via the plastidial methylerythritol 4-phosphate (MEP) pathway, which can be cloned in the host cell.
- MEP plastidial methylerythritol 4-phosphate
- the method of manufacturing (13R)-manoyl oxide is performed in vitro.
- the first and the second polypeptides may be
- the GGPP may itself be produced by a host organism as detailed above.
- the method of the invention may in some embodiments comprise a step of recovering the (13R)-manoyl oxide by methods known in the art. Such methods may involve solid- phase microextraction from plant leaves when the method is performed in a plant, (see for example Spanner et al., 2013).
- the host cell may also be capable of secreting (13R)-manoyl oxide, thereby facilitating its recovery.
- the invention further relates to a non-enzymatic method for manufacturing forskolin using (13R)-manoyl oxide substrate.
- (13R)-manoyl oxide is converted via chemical reactions performed in vitro to produce forskolin. Such chemical reactions do not comprise enzymatic reactions. These non-enzymatic reactions are well known by those of skill in the art.
- the invention provides a polypeptide having diPTS activity.
- Said polypeptide is useful in the methods of manufacturing (13R)-manoyl oxide according to the invention,
- the polypeptide of the invention has a diTPS activity.
- the polypeptide has a class I diTPS activity.
- Class I diTPS are capable of cleaving diphosphate groups and performing rearrangement reactions such as cyclization.
- Some polypeptides of the invention have a class I diTPS activity and catalyse cleavage of the diphosphate group of LPP and additional cyclization or rearrangement reactions on the resulting carbocation, yielding (13R)-manoyl oxide. Deprotonation or water capture terminate the class I diTPS reaction.
- Class I diTPS relevant for the invention are TSP3 and TPS4 from Coleus forskohlii (CfTPS3 and CfTPS4, respectively) and TPS8 from Euphorbia peplus (EpTPS8).
- sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 4 [CfTPS3], iii) a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 4 [CfTPS3] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- the polypeptide comprises a biologically active sequence variant having an amino acid sequence at least 95% identical to SEQ ID NO: 4
- the polypeptide comprises an amino acid sequence 100% identical to SEQ ID NO: 4 [CfTPS3].
- the polypeptide of the invention may comprise a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 4 [CfTPS3] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 3 [CfTPS4], iii) a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 3 [CfTPS4] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- the polypeptide comprises a biologically active sequence variant having an amino acid sequence at least 95% identical to SEQ ID NO: 3
- the polypeptide comprises an amino acid sequence 100% identical to SEQ ID NO: 3 [CfTPS4].
- the polypeptide of the invention may comprise a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 3 [CfTPS4] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- the polypeptide of the invention comprises: i) an amino acid sequence identical to SEQ ID NO: 5 [EpTPS8], a biologically active sequence variant of said polypeptide, wherein the sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 5 [EpTPS8], a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 5 [EpTPS8] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- the polypeptide of the invention comprises an operative class I DDxxD (SEQ ID NO: 12) domain.
- the polypeptides of the invention in particular the Class I diTPS
- the polypeptides of the invention comprise a DDxxD domain. This domain is found at positions 531 -535 of SEQ ID NO: 3 [CfTPS4], 299-303 of SEQ ID NO: 4 [CfTPS3], 540-544 of SEQ ID NO: 5 [EpTPS8].
- Other important functional domains of the class I diTPS polypeptides of the invention are Mg 2+ -binding sites, active site lid residues and substrate binding pockets.
- SEQ ID NO: 4 [CfTPS3], SEQ ID NO: 3 [CfTPS4] and SEQ ID NO: 5 [EpTPS8] are listed in Table 1 .
- Some embodiments of the invention concern polypeptides, such as Class I diTPS in which these residues or domains are not modified.
- the polypeptides of the invention comprise a plastidial target domain.
- the plastidial target domain is comprised in the domain ranging from positions 1 to 73 of SEQ ID NO: 3 [CfTPS4], 1 to 73 of SEQ ID NO: 4 [CfTPS3], 1 to 73 of SEQ ID NO: 5 [EpTPS8], respectively.
- preferred polypeptides e.g. Class I diTPS
- Mg -binding sites for CfTPS3 (SEQ ID NO: 4) are found at positions 443 (N) and 451 (E).
- a biologically active sequence variant of a class I diTPS is preferably a polypeptide sharing the above mentioned sequence identity with CfTPS3, CfTPS4 or EpTPS8 and which preferably comprises above-mentioned domains and which is capable of catalysing cleavage of the diphosphate group of LPP and additional cyclization or rearrangement reactions on the resulting carbocation, yielding (13R)-manoyl oxide.
- the invention provides a polypeptide having diPTS activity.
- Said polypeptide is useful in the methods of manufacturing (13R)-manoyl oxide according to the invention,
- the polypeptide has a class II diTPS activity.
- Class II diTPS are capable of catalysing protonation-initiated cationic cycloisomerization reactions. The reaction is terminated either by deprotonation or by water capture of the diphosphate carbocation.
- a class II diTPS relevant for the invention is TPS2 from Coleus forskohlii (CfTPS2), which can catalyse cycloisomerisation of GGPP to LPP. Deprotonation or water capture terminate the class II diTPS reaction.
- sequence variant is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2], iii) a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 1 [CfTPS2] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- the polypeptide comprises a biologically active sequence variant having an amino acid sequence at least 95% identical to SEQ ID NO: 1
- the polypeptide comprises an amino acid sequence 100% identical to SEQ ID NO: 1 [CfTPS2].
- the polypeptide of the invention may comprise a biologically active fragment of at least 50 contiguous amino acids of any of i) through ii), said fragment having at least 75% sequence identity to SEQ ID NO: 1 [CfTPS2] in a range of overlap of at least 50 amino acids, wherein the biological activity is diterpene synthase activity, preferably class I diterpene synthase activity.
- the polypeptide of the invention comprises an operative class II DxDD domain.
- the polypeptides of the invention e.g. the Class II diTPS
- the polypeptides of the invention comprise a DxDD domain. This domain is found at positions 358-361 of SEQ ID NO: 1 [CfTPS2].
- the polypeptides of the invention comprise a plastidial target domain.
- Class II diTPS may comprise a plastidial target domain.
- the plastidial target domain is comprised in the domain ranging from positions 1 to 73 of SEQ ID NO: 1 [CfTPS2].
- a biologically active sequence variant of a class II diTPS is preferably a polypeptide sharing the above mentioned sequence identity with CTTPS2 or SsLPPS and which preferably comprises above-mentioned domains and which is capable of catalysing cycloisomerisation of GGPP to LPP.
- the invention further relates to a polynucleotide encoding a polypeptide according to the invention.
- the polynucleotide has a sequence with at least 85% identity to a sequence selected from the group consisting of SEQ ID NO: 6 [CfTPS2], SEQ ID NO: 9 [CfTPS3], SEQ ID NO: 8 [CfTPS4] and SEQ ID NO: 10 [EpTPS8].
- the polynucleotide has a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 6 [CfTPS2].
- the polynucleotide may in particular encode a polypeptide of SEQ ID NO:1 [CfTPS2] or a biologically active sequence variant thereof sharing at least 75%, such as at least 80%, such as at least 85%, such as at least 90%, such as at least 95%, such as at least 98% sequence identity with SEQ ID NO:1 .
- the polynucleotide has a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 9 [CfTPS3].
- the polynucleotide may in particular encode a polypeptide of SEQ ID NO:4 [CfTPS3] or a biologically active sequence variant thereof sharing at least 75%, such as at least 80%, such as at least 85%, such as at least 90%, such as at least 95%, such as at least 98% sequence identity with SEQ ID NO:4.
- the polynucleotide has a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 8 [CfTPS4].
- the polynucleotide may in particular encode a polypeptide of SEQ ID NO:3 [CfTPS4] or a biologically active sequence variant thereof sharing at least 75%, such as at least 80%, such as at least 85%, such as at least 90%, such as at least 95%, such as at least 98% sequence identity with SEQ ID NO:3.
- the polynucleotide has a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 10 [EpTPS8].
- the polynucleotide may in particular encode a polypeptide of SEQ ID NO:5 [EpTPS8] or a biologically active sequence variant thereof sharing at least 75%, such as at least 80%, such as at least 85%, such as at least 90%, such as at least 95%, such as at least 98% sequence identity with SEQ ID NO:5.
- polynucleotides of the invention encode polypeptides having a diTPS activity as described above.
- the polynucleotide comprises a sequence coding for an operative class I domain DDxxD. This is in particular the case, when the
- polynucleotide encode a class I diTPS.
- the DDxxD domain of the CfTPS3 diTPS is DDFFD, where D is an aspartic acid and F is a phenylalanine, and is found at positions 330 to 334 (SEQ ID NO: 4).
- the DDxxD domain of the CfTPS4 diTPS is DDFFD, where D is an aspartic acid and F is a phenylalanine, and is found at positions 331 to 335 (SEQ ID NO: 3).
- the DDxD domain of the EpTPS8 diTPS is DDFFD, where D is an aspartic acid and F is a phenylalanine, and is found at positions 540 to 544 (SEQ ID NO: 5).
- the polynucleotide comprises a sequence coding for an operative class II domain DxDD.
- the DxDD domain of the CfTPS2 diTPS is DIDD, where D is an aspartic acid and I is an isoleucine residue, and is found at positions 399 to 402 (SEQ ID NO: 1 ).
- Some polynucleotides of the invention may comprise a sequence coding for a plastidial targeting signal.
- the plastidial target domain is comprised in the corresponding polypeptides in the domains ranging from positions 1 to 50 of SEQ ID NO: 1 [CfTPS2], 1 to 33 of SEQ ID NO: 3 [CfTPS4], 1 to 3 of SEQ ID NO: 4 [CfTPS3], 1 to 5 of SEQ ID NO: 5 [EpTPS8], respectively.
- the polynucleotide may have a sequence that is codon-optimised. Codon optimisation methods are known in the art and allow optimised expression in a heterologous host organism or cell.
- the host cell may be selected from the group comprising bacterial cell, yeast cells, fungal cells, plant cells, mammalian cells and insect cells.
- the host cell may be selected from the group comprising Escherichia coli, Saccharomyces cerevisiae,Schizosaccharomyces pombe, Nicotiana benthamiana and Physcomitrella patens.
- the host cell is Escherichia coli.
- the host cell is Saccharomyces cerevisiae or Schizosaccharomyces pombe.
- the host cell is Nicotiana benthamiana.
- the host cell is Physcomitrella patens.
- the invention further relates to a vector comprising at least one polynucleotide as defined above.
- the invention relates to a vector suitable for expression of at least one polypeptide having a diTPS activity.
- the vector comprises a polynucleotide having a sequence with at least 85% identity to a sequence selected from the group consisting of SEQ ID NO: 6 [CfTPS2], SEQ ID NO: 9 [CfTPS3], SEQ ID NO: 8 [CfTPS4] and SEQ ID NO: 10
- the vector comprises a polynucleotide having a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 6 [CfTPS2].
- the vector comprises a polynucleotide having a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 9 [CfTPS3].
- the vector comprises a polynucleotide having a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 8 [CfTPS4].
- the polynucleotide has a sequence with at least 85% identity, such as at least 90% identity, such as at least 95% identity, such as at least 96% identity, such as at least 97% identity, such as at least 98% identity, such as 99% identity, such as 100% identity to SEQ ID NO: 10 [EpTPS8].
- the vector comprises a first polynucleotide having a sequence with at least 85% identity to a sequence selected from the group consisting of SEQ ID NO: 6 [CfTPS2], SEQ ID NO: 9 [CfTPS3], SEQ ID NO: 8 [CfTPS4] and SEQ ID NO: 10 [EpTPS8] and a second polynucleotide having a sequence with at least 85% identity to a sequence selected from the group consisting of SEQ ID NO: 6 [CfTPS2], SEQ ID NO: 9 [CfTPS3], SEQ ID NO: 8 [CfTPS4] and SEQ ID NO: 10 [EpTPS8], where the second polynucleotide is different from the first polynucleotide.
- SEQ ID NO: 6 [CfTPS2] SEQ ID NO: 9 [CfTPS3]
- SEQ ID NO: 8 [CfTPS4] and SEQ ID NO: 10 [EpTPS8 where the second
- the vector comprises a first polynucleotide coding for a polypeptide with a class I diTPS activity and a second polynucleotide coding for a polypeptide with a class II diTPS activity.
- the first polynucleotide has a sequence with at least 85% identity to SEQ ID NO: 6 [CfTPS2]
- the second polynucleotide has a sequence with at least 85% identity to SEQ ID NO: 9 [CfTPS3], SEQ ID NO: 8 [CfTPS4] and SEQ ID NO: 10 [EpTPS8].
- Vectors of the invention comprise plasmids, cosmids, viral vectors, artificial chromosomes and bacterial vectors.
- the vector may be suitable for transient expression of the at least one polynucleotide.
- Such vectors are known in the art. For example, expression may be induced by addition of a compound to the growth medium.
- the vector may be a bacterial vector, such as Agrobacterium tumefaciens.
- the vector also encodes a viral suppressor of gene silencing, such as the p19 protein of tomato bushy stunt virus.
- the invention further relates to a host cell comprising a polynucleotide as defined above and/or a vector as defined above.
- the host cell is capable of producing (13R)-manoyl oxide.
- the host cell of the invention is capable of expressing: (i) a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2]; and
- the host cell is capable of expressing a first polypeptide having a class I diTPS activity and a second polypeptide having a class II diTPS activity.
- the host cell is capable of expressing a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] and a second polypeptide having a sequence at least 70% identical to SEQ ID NO: 4 [CfTPS3].
- the host cell is capable of expressing a first polypeptide, which is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO: 1 [CfTPS2] and a second polypeptide, which is CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO:4 [CfTPS3].
- a first polypeptide which is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO: 1 [CfTPS2]
- a second polypeptide which is CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with
- the host cell is capable of expressing a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] and a second polypeptide having a sequence at least 70% identical to SEQ ID NO: 3 [CfTPS4].
- the host cell is capable of expressing a first polypeptide, which is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO: 1 [CfTPS2] and a second polypeptide, which is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO:3 [CfTPS4].
- a first polypeptide which is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO: 1 [CfTPS2]
- a second polypeptide which is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with
- the host cell is capable of expressing a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] and a second polypeptide having a sequence at least 70% identical to SEQ ID NO: 5 [EpTPS8].
- the host cell is capable of expressing a first polypeptide, which is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO: 1 [CfTPS2] and a second polypeptide, which is EpTPS8 of SEQ ID NO:5 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID N0:5 [EpTPS8].
- a first polypeptide which is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with SEQ ID NO: 1 [CfTPS2]
- a second polypeptide which is EpTPS8 of SEQ ID NO:5 or a biologically active variant thereof sharing at least 75%, such as at least 85%, such as at least 95% sequence identity with
- the host cell may be selected from the group comprising bacterial cell, yeast cells, fungal cells, plant cells, mammalian cells and insect cells.
- the host cell may be selected from the group comprising Escherichia coli, Saccharomyces cerevisiae, Schizosaccharomyces pombe, Nicotiana benthamiana and Physcomitrella patens.
- the host cell is Escherichia coli.
- the host cell is Saccharomyces cerevisiae or Schizosaccharomyces pombe.
- the host cell is Nicotiana benthamiana.
- the host cell is Physcomitrella patens.
- first and second polypeptides are known in the art.
- One or both of the first and second polypeptides may be heterologously expressed from polynucleotide sequences cloned into the genome of the host cell or they may be comprised within a vector as described above.
- a first polynucleotide coding for the first polypeptide is cloned into the genome
- a second polynucleotide coding for the second polypeptide is comprised within a vector transformed or transfected into the host cell.
- the first polynucleotide is comprised within a first vector and the second polynucleotide is comprised within a second vector.
- the first and second vector may be one vector.
- Vectors suitable for expression of the first and second polypeptides are known in the art.
- Expression of the first and second polypeptides in the host cell may occur in a transient manner.
- an inducible promoter may be cloned as well to control expression of the polypeptides.
- inducible promoters are known in the art.
- genes coding for suppressors of gene silencing may also be cloned in the genome or into a vector transfected within the host cell.
- the host cell may be selected from the group comprising bacterial cell, yeast cells, fungal cells, plant cells, mammalian cells and insect cells.
- the host cell may be selected from the group comprising Escherichia coli, Saccharomyces cerevisiae, Schizosaccharomyces pombe, Nicotiana benthamiana and Physcomitrella patens.
- the host cell is Escherichia coli.
- the host cell is Saccharomyces cerevisiae or Schizosaccharomyces pombe.
- the host cell is Nicotiana benthamiana.
- the host cell is Physcomitrella patens.
- the host cell is transfected with a vector.
- the vector may be selected from the group comprising plasmids, cosmids, viral vectors, artificial chromosomes and bacterial vectors.
- the vector may be constructed so that transient expression of the first and/or second polynucleotide from the vector is transient.
- Transient expression from the vector may occur via induction of an inducible promoter as is known in the art.
- the host cell is a Nicotiana benthamiana cell, such as a leaf cell.
- the vector is the bacterial vector Agrobacterium tumefaciens.
- the vector also encodes a viral suppressor of gene silencing.
- the vector encodes the p19 protein from tomato bushy stunt virus.
- the host cell may naturally be capable of producing GGPP.
- the cell may be engineered so that it is capable of producing GGPP.
- the plastidial methylerythritol 4-phosphate (MEP) pathway may be cloned into the host cell.
- the host cell may comprise one or more heterologous nucleic acids encoding one or more enzymes of the MEP pathway.
- the host cell may be further engineered in order to redirect metabolic fluxes and optimise for the production of a specific compound.
- the host cell is capable of producing diterpenoids.
- the host cell may be capable of producing (13R)-manoyl oxide in a substantially pure enantiomeric form.
- Example 1 Identification of Coleus forskohlii diTPS genes.
- Forskolin is a representative of an unusual series of tricyclic (8,13)-epoxy-labdanes, characteristic for this plant. Given its importance as a pharmaceutical, we set out to discover genes involved in the biosynthesis of forskolin. Materials and methods
- Tissue was extracted.
- Cold methanol acidified with formic acid (0.125%) was added to ground and frozen tissue samples in a ratio of 3:1 (solvent:tissue).
- Samples were sonicated in an ultrasonic bath at 23 ⁇ for 15 min at 40 kHz (Branson, 3510), filtered using 96 well filter plates and analyzed by HPLC (High-Performance Liquid
- Total RNA from C. forskohlii xoo ⁇ cork was extracted according to Hamberger et al., 201 1 , and further purified using the Spectrum Plant Total RNA Kit (Sigma) while total RNA from leaves, flowers, stems and root cortex and stele was extracted using the Spectrum Plant Total RNA Kit (Sigma). RNA extraction was followed by on-column DNase I digestion. First-strand cDNAs were synthesized from 0.5 ⁇ g of total RNA. The resulting cDNA was diluted 10-fold for the qRT-PCR reactions.
- Quantitative real-time PCR reactions were performed with gene specific primers (SEQ ID NO: 43 to 62) and Maxima SYBR Green/Fluorescein qPCR Master Mix (Fermentas) on a Rotor-Gene Q cycler (Qiagen).
- TIF4a and EF1 a were used as reference genes as they showed the lowest variation across different tissues. The results were normalized with TIF4a.
- Relative transcript abundance was calculated as the mean of three biological replications (three different plants), while the reactions were performed in three technical replicates.
- Amplification efficiency was calculated with the "Real Time PCR Miner" (http://www.miner.ewindup.info/Version2). Efficiency-corrected AC T values were used to quantify relative differences in target gene transcript accumulation.
- pET28b+ constructs were transformed into E. coli BL-21 DE3-C41 cells and and grown in selection medium until the OD 600 reached 0.3-0.4. Expression was induced at OD 600 -0.6 with 0.2 mM IPTG. Expression was done overnight and cells were harvested by centrifugation and lysed. The cell lysates were centrifuged and the supernatant was subsequently used for purification of the recombinant proteins.
- CfTPS proteins were purified on 1 ml_ His SpinTrapTM columns (GE healthcare), In vitro CfTPS assays were performed by adding 15 ⁇ GGPP and 100 ⁇ g purified CfTPS enzymes in 397 ⁇ _ enzyme assay buffer (50 mM HEPES (pH 7.2), 7.5 mM MgCI 2 , 5% (v/v) glycerol, 5 mM DTT). Onto the reaction mix, 500 ⁇ _ n-hexane (Fluka GC-MS grade) was gently added as an overlay. Assays were incubated for 60 min at 30 'C and -70 rpm and the hexane overlay was subsequently removed for GC-MS analysis.
- enzyme assay buffer 50 mM HEPES (pH 7.2), 7.5 mM MgCI 2 , 5% (v/v) glycerol, 5 mM DTT.
- 500 ⁇ _ n-hexane Fluk
- the ion 275 m/z is characteristic of several labdane type diterpenes including manoyl oxide whereas 272 m/z is characteristic of several other non-labdane type diterpenes such as abietane like diterpenes. All extractions from N. benthamiana transiently expressing diTPSs were carried out in biological triplicates (different leaves/plants infiltrated with the same agrobacteria mixture).
- GC-MS gas chromatography-mass spectrometry
- GenBankTM/EBI Data Bank with accession numbers: CfTPSI , KF444506; CfTPS2, KF444507; CfTPS3, KF444508; CfTPS4, KF444509; CfTPSI 5, KF47101 1 .
- Globules of neutral lipids dispersed in predominantly polar lipids were detected by the fluorescence (Fig. 1 D-F).
- Separate methanol extracts of the root cork and the root stele and cortex were analysed by high-performance liquid chromatography (HPLC) using an evaporative light scattering detector (ELSD) and compared with flowers, leaves and stems.
- HPLC high-performance liquid chromatography
- ELSD evaporative light scattering detector
- methanol extracts of isolated oil bodies were subjected to HPLC-ELSD analysis, targeting polar constituents, while non-polar hexane extracts were analyzed by gas chromatography-mass spectrometry (GC-MS) (Fig. 3).
- GC-MS gas chromatography-mass spectrometry
- Example 3 C. forskohlii diTPSs constitute a small gene family specific for Lamiaceae
- CfTPSI CfTPS2, CfTPS3, CfTPS4, CfTPSI 4 and CfTPSI 5 which, with exception of CfTPS15, represented full-length cDNAs with predicted N-terminal plastidial transit peptides.
- CfTPSI, CfTPS2, and CfTPSI 5 contained the Asp-rich conserved motif DxDD characteristic of class II diTPS, while CfTPS3, CfTPS4 and CfTPS14 carried the DDxxD signature motif of class I diTPS.
- Example 4 Transcript levels of C. forskohlii diTPSs in various tissues and in vitro functional characterization
- CfTPSI, CfTPS2 and CfTPS3 shared a similar pattern of transcript profiles across all tissues, showing high transcript accumulation in root cork cells, up to 1000-fold in comparison with all other tissues tested (Fig. 5).
- CfTPSI CfTPS2 and CfTPS3 ⁇ n the formation of specialized metabolites in the root cork.
- transcript levels of CfTPS4, CfTPS14 and CfTPSI 5 were relatively low across all tissues tested.
- CfTPS3 and CfTPS4 show surprisingly different expression patterns.
- CfTPS4 transcripts were mostly detected in the aerial parts of the plant, especially in the leaves, while its transcripts accumulate only to very low levels in the root.
- cDNAs were heterologously expressed in E. coli with a C-terminal 6xHis epitope tag.
- Purified recombinant proteins were tested individually in single or coupled in vitro assays, supplied with appropriate substrates and the reaction products were analyzed by GC-MS. Products of the in vitro assays with the class II diTSPs, CfTPSI and CfTPS2, were treated with alkaline phosphatase before GC-MS analysis.
- Enzyme assays with CfTPSI yielded a diterpene with a mass spectrum matching copal-15-ol (h), indicating that the primary product before dephosphorylation is copalyl diphosphate (Fig. 6A).
- Assays of CfTPS2 resulted in the formation of 13(16)-14- labdien-8-ol (f) and labd-13-en-8,15-diol (g) as major products (Fig. 6B), supporting a function as labda-13-en-8-ol (or copal-8-ol) diphosphate synthase, similar to the functions of previous reported similar enzymes.
- Example 5 In planta heterologous expression and functional characterization of C. forskohlii diTPSs
- the CfTPSs were expressed in Nicotiana benthamiana leaves after agroinfiltration. GC-MS analyses of extracts from N. benthamiana leaves transiently expressing the individual class I CfTPS3, CfTPS4 and CfTPS14 did not result in detectable
- step (ii) contacting GGPP of step (i) with a first polypeptide having a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] or SEQ ID NO: 2 [SsLPPS], thus obtaining labd-13-en-8,15-diol diphosphate (LPP);
- step (iii) contacting the LPP of step (ii) with a second polypeptide having a sequence at least 70% identical to SEQ ID NO: 3 [CfTPS4], SEQ ID NO: 4
- first polypeptide is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75% sequence identity therewith and the second polypeptide is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof sharing at least 75% sequence identity therewith.
- first polypeptide is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 85% sequence identity therewith and the second polypeptide is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof sharing at least 85% sequence identity therewith.
- first polypeptide has a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence at least 70% identical to SEQ ID NO: 4 [CfTPS3].
- first polypeptide is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75% sequence identity therewith and the second polypeptide is CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof sharing at least 75% sequence identity therewith.
- CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof sharing at least 85% sequence identity therewith.
- the first polypeptide has a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence at least 70% identical to SEQ ID NO: 5 [EpTPS8].
- the first polypeptide is CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof sharing at least 75% sequence identity therewith and the second polypeptide is EpTPS8 of SEQ ID NO:5 or a biologically active variant thereof sharing at least 75% sequence identity therewith.
- the second polypeptide has a sequence at least 70% identical to SEQ ID NO: 3 [CfTPS4].
- first polypeptide is SsLPPS of SEQ ID NO:2 or a biologically active variant thereof sharing at least 75% sequence identity therewith and the second polypeptide is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof sharing at least 75% sequence identity therewith.
- first polypeptide is SsLPPS of SEQ ID NO:2 or a biologically active variant thereof sharing at least 85% sequence identity therewith and the second polypeptide is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof sharing at least 85% sequence identity therewith.
- first polypeptide is SsLPPS of SEQ ID NO:2 or a biologically active variant thereof sharing at least 75% sequence identity therewith and the second polypeptide is CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof sharing at least 75% sequence identity therewith.
- first polypeptide is SsLPPS of SEQ ID NO:2 or a biologically active variant thereof sharing at least 85% sequence identity therewith and the second polypeptide is EpTPS8 of SEQ ID NO:5 or a biologically active variant thereof sharing at least 85% sequence identity therewith.
- the host organism is a prokaryote or a eukaryote. 35. The method according to any one of the preceding items, wherein the host organism is selected from the group comprising bacteria, yeast, fungi, plants, insects and mammals.
- benthamiana and Physcomitrella patens are benthamiana and Physcomitrella patens.
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2].
- the second polypeptide has a sequence at least 60% identical to, such as at least 65% identical to, such as at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 4 [CfTPS3].
- the second polypeptide has a sequence at least 60% identical to, such as at least 65% identical to, such as at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 5 [EpTPS8].
- the first polypeptide has a sequence at least 70% identical to, such as at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2]; and
- the second polypeptide has a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as 100% identical to SEQ ID NO: 3 [CfTPS4].
- the host cell is selected from the group comprising bacterial cell, yeast cells, fungal cells, plant cells, mammalian cells and insect cells. 48. The method according to the preceding items, wherein the host cell is a bacterial cell.
- GGPP is produced via the plastidial methylerythritol 4-phosphate (MEP) pathway.
- a method of producing forskolin comprising the steps of
- diterpene synthase (diTPS) polypeptide comprising: i) an amino acid sequence selected from the group consisting of SEQ ID NO: 1 [CfTPS2], SEQ ID NO: 4 [CfTPS3], SEQ ID NO: 3 [CfTPS4] and SEQ ID NO: 5 [EpTPS8]; ii) a biologically active sequence variant of said polypeptide, wherein the sequence variant has at least 75% sequence identity to said SEQ ID NO: 1 [CfTPS2], SEQ ID NO: 4 [CfTPS3], SEQ ID NO: 3 [CfTPS4] or SEQ ID NO: 5 [EpTPS8]; or iii) a biologically active fragment of at least 50 contiguous amino acids of any
- polypeptide according to item 66 wherein the polypeptide has a class I diTPS activity.
- polypeptide according to any one of items 66 to 67, wherein polypeptide is CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 4 [CfTPS3].
- polypeptide according to any one of the preceding items, wherein the sequence is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 3 [CfTPS4].
- polypeptide according to any one of items 66 to 67, wherein polypeptide is CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 3 [CfTPS4].
- polypeptide according to any one of the preceding items, wherein the sequence is at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 5 [EpTPS8].
- polypeptide according to any one of items 66 to 67 wherein polypeptide is EpTPS8 of SEQ ID NO:5 or a biologically active variant thereof at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 5 [EpTPS8].
- the polypeptide according to any one of items 66 to 73 comprising an operative class I DDxxD domain.
- the polypeptide according to item 66, wherein the polypeptide has a class II diTPS activity.
- the polypeptide according to item 75 having a sequence at least 75% identical to, such as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to, such as 100% identical to SEQ ID NO: 1 [CfTPS2].
- the polypeptide according to any one of items 75 to 76 comprising an operative class II DxDD domain.
- the polypeptide according to any one of items 65 to 82 further comprising a plastidial targeting signal.
- polynucleotide according to item 79 wherein the polynucleotide has a sequence with at least 85% identity to a sequence selected from the group consisting of SEQ ID NO:6 [CfTPS2], SEQ ID NO:9 [CfTPS3], SEQ ID NO:8 [CfTPS4] and SEQ ID NO:10 [EpTPS8].
- 81 The polynucleotide according to any one of items 79 to 80, wherein the polynucleotide has a sequence with at least 85% identity to SEQ ID NO: 6 [CfTPS2].
- polynucleotide encodes CfTPS2 of SEQ ID NO:1 or a biologically active variant thereof at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 1 [CfTPS2].
- polynucleotide has a sequence with at least 85% identity to SEQ ID NO: 9 [CfTPS3].
- polynucleotide according to any one of items 79, 80 and 83, wherein the polynucleotide encodes CfTPS3 of SEQ ID NO:4 or a biologically active variant thereof at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 4 [CfTPS3].
- polynucleotide has a sequence with at least 85% identity to SEQ ID NO: 8
- polynucleotide according to any one of items 79, 80 and 85 wherein the polynucleotide encodes CfTPS4 of SEQ ID NO:3 or a biologically active variant thereof at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 3 [CfTPS4].
- 87 The polynucleotide according to any one of items 79 to 80, wherein the
- polynucleotide has a sequence with at least 85% identity to SEQ ID NO: 10 [EpTPS8].
- 88. The polynucleotide according to any one of items 79, 80 and 87, wherein the polynucleotide encodes EpTPS8 of SEQ ID NO:5 or a biologically active variant thereof as at least 80% identical to, such as at least 85% identical to, such as at least 90% identical to, such as at least 95% identical to, such as at least 96% identical to, such as at least 97% identical to, such as at least 98% identical to, such as at least 99% identical to SEQ ID NO: 5 [EpTPS8].
- polynucleotide according to any one of items 79 to 88, further comprising a sequence coding for a plastidial targeting signal.
- polynucleotide is codon-optimised for expression in a host cell.
- the polynucleotide according to item 90 wherein the host cell is selected from the group comprising bacterial cell, yeast cells, fungal cells, plant cells, mammalian cells and insect cells.
- a vector comprising at least one polynucleotide as defined in any one of items 79 to 91 .
- a host cell comprising the polynucleotide according to any one of items 79 to 91 , and/or the vector according to any one of items 92 to 93.
- the host cell according to item 94 capable of producing (13R)-manoyl oxide.
- a second polypeptide which is the polypeptide according to any one of claims 67 to 74.
- the cell according to item 94 wherein the first polypeptide has a sequence at least 70% identical to SEQ ID NO: 1 [CfTPS2] and the second polypeptide has a sequence at least 70% identical to SEQ ID NO: 5 [EpTPS8]. .
- the cell according to any one of items 94 to 100 wherein the cell is selected from the group comprising bacterial cell, yeast cells, fungal cells, plant cells, mammalian cells and insect cells. .
- the cell according to item 101 wherein the cell is a bacterial cell. .
- the cell according to item 101 wherein the cell is a yeast cell. .
- the cell according to item 104 wherein the yeast is Saccharomyces cerevisiae or Schizosaccharomyces pombe. .
- the cell according to any one of items 94 to 105 wherein the cell is capable of secreting (13R)-manoyl oxide.
- the cell according to any one of items 94 to 106 wherein the cell is transfected with at least one vector for expressing the first and the second polypeptides.
- the cell according to any one of items 94 to 107 wherein the cell is transfected with at least one vector according to any one of items 92 to 93.
- the cell according to item 101 wherein the cell is a plant cell selected from the group consisting of Nicotiana benthamiana and Physcomitrella patens. .
- the cell according to item 109 wherein the cell is a Nicotiana
- benthamiana cell .
- the cell according to item 1 10 wherein the Nicotiana benthamiana cell is a leaf cell.
- the cell according to item 1 1 1 wherein the Nicotiana benthamiana leaf cell is transfected with at least one vector for expressing the first and the second polypeptides.
- the cell according to item 1 12, wherein the at least one vector for expressing the first and the second polypeptides is a bacterial vector for transient expression.
- the bacterial vector is
- Agrobacterium tumefaciens The cell according to any one of items 1 13 to 1 14, wherein the first and second polypeptides are expressed in a transient manner. .
- the cell according to item 1 15, wherein the vector also encodes a suppressor of gene silencing.
- the cell according to item 1 16, wherein the suppressor of gene silencing is the p19 protein of tomato bushy stunt virus.
- the cell according to any one of items 94 to 1 17, wherein the cell is further capable of producing GGPP.
- the cell according to any one of items 94 to 1 19, wherein the host cell comprises at least one heterologous nucleic acid encoding an enzyme of the MEP pathway.
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Abstract
Description
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Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP14816252.2A EP3083975B1 (en) | 2013-12-20 | 2014-12-19 | Stereo-specific synthesis of (13r)-manoyl oxide |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP13198742 | 2013-12-20 | ||
| EP13198756.2A EP2886647A1 (en) | 2013-12-20 | 2013-12-20 | Polypeptides with diterpene synthase activity |
| PCT/EP2014/078728 WO2015091943A1 (en) | 2013-12-20 | 2014-12-19 | Stereo-specific synthesis of (13r)-manoyl oxide |
| EP14816252.2A EP3083975B1 (en) | 2013-12-20 | 2014-12-19 | Stereo-specific synthesis of (13r)-manoyl oxide |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3083975A1 true EP3083975A1 (en) | 2016-10-26 |
| EP3083975B1 EP3083975B1 (en) | 2018-11-14 |
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ID=52144700
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP14816252.2A Not-in-force EP3083975B1 (en) | 2013-12-20 | 2014-12-19 | Stereo-specific synthesis of (13r)-manoyl oxide |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20160318893A1 (en) |
| EP (1) | EP3083975B1 (en) |
| DK (1) | DK3083975T3 (en) |
| WO (1) | WO2015091943A1 (en) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10053717B2 (en) | 2014-01-31 | 2018-08-21 | University Of Copenhagen | Biosynthesis of forskolin and related compounds |
| EP3218495A1 (en) * | 2014-11-13 | 2017-09-20 | Evolva SA | Methods and materials for biosynthesis of manoyl oxide |
| WO2016166243A1 (en) * | 2015-04-15 | 2016-10-20 | Evolva Sa | Biosynthesis of acetylated 13r-mo and related compounds |
| CN107746815A (en) * | 2017-09-11 | 2018-03-02 | 天津大学 | Produce recombinant Saccharomyces cerevisiae bacterium and its construction method of 13R manoyl oxides |
| EP3830280A4 (en) * | 2018-08-03 | 2022-02-23 | Board Of Trustees Of Michigan State University | PROCESSES FOR THE PRODUCTION OF NEW DITERPEN FRAMEWORKS |
| WO2023280677A1 (en) | 2021-07-06 | 2023-01-12 | Isobionics B.V. | Recombinant manufacture of c-20 terpenoid alcohols |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2009044336A2 (en) * | 2007-10-05 | 2009-04-09 | Firmenich Sa | Method for producing diterpenes |
| CN101939430B (en) * | 2008-02-15 | 2015-05-13 | 弗门尼舍有限公司 | Method for producing sclareol |
| CN101538576A (en) * | 2008-07-10 | 2009-09-23 | 中国中医科学院中药研究所 | Gene for generating related diterpene synthase together with tanshinone type compound as well as encoding product and application thereof |
-
2014
- 2014-12-19 DK DK14816252.2T patent/DK3083975T3/en active
- 2014-12-19 EP EP14816252.2A patent/EP3083975B1/en not_active Not-in-force
- 2014-12-19 WO PCT/EP2014/078728 patent/WO2015091943A1/en not_active Ceased
- 2014-12-19 US US15/103,838 patent/US20160318893A1/en not_active Abandoned
Also Published As
| Publication number | Publication date |
|---|---|
| WO2015091943A1 (en) | 2015-06-25 |
| US20160318893A1 (en) | 2016-11-03 |
| DK3083975T3 (en) | 2019-03-04 |
| EP3083975B1 (en) | 2018-11-14 |
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